If M (A; Z), Mₚ and Mₙ denote the masses of the nucleus AZ X, proton
If M (A; Z), Mₚ and Mₙ denote the masses of the nucleus AZ X, proton and neutron respectively in units of u (1u = 931.5 MeV/c) and BE represents its bonding energy in MeV, […]
If M (A; Z), Mₚ and Mₙ denote the masses of the nucleus AZ X, proton and neutron respectively in units of u (1u = 931.5 MeV/c) and BE represents its bonding energy in MeV, […]
If the nucleus ²⁷₁₃Al has nuclear radius of about 3.6 fm, then ¹²⁵₃₂Te would have its radius approximately as
Options
(a) 9.6 fm (b) 12.0 fm (c) 4.8 fm (d) 6.0 fm
Correct Answer: […]
Fission of nuclei is possible because the binding energy per nucleon in them
Options
(a) increases with mass number at low mass numbers (b) decreases with mass number at low mass numbers (c) […]
In the reaction ₁²H+₁³H+₂⁴He+₀¹n, if the binding energies of ₁²H,₁³H and ₂⁴He are respectively a,b and c (in MeV), then the energy (in MeV) released in this reaction is
Options
(a) a+b+c (b) […]
The Bohr model of atoms
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(a) Assumes that the angular momentum of electrons is quantized (b) Uses Einstein’s photoelectric equation (c) Predicts emission spectra for continuous atoms (d) Predicts the same emission […]
If in a nuclear fusion process, the masses of the fusing nuclei be m₁ and m₂ and the mass of the resultant nucleus be m₃, then
Options
(a) m₃=m₁+m₂ (b) m₃=(m₁-m₂) (c) m₃<(m₁+m₂) (d) […]
Complete the reaction: ₀n¹+ ₉₂U²³⁵→₅₆Ba¹⁴⁴+……..+3n
Options
(a) ₃₆Kr⁸⁹ (b) ₃₆Kr⁹⁰ (c) ₃₆Kr⁹³ (d) ₃₆Kr⁹²
Correct Answer:
₃₆Kr⁸⁹
Explanation:
A’ of product of be formed = (235 + 1) – (144 +3) = 236 – […]
If the ionisation energy for the hydrogen atom is 13.6 eV, the energy required to excite it from the ground state to the next higher state is nearly
Options
(a) 3.4 eV (b) […]
What is the Q-value of the reaction? ¹H+⁷Li → ⁴He+⁴He The atomic masses of ¹H,⁴He and ⁷Li are 1.0078254u, 4.0026034u and 7.016004u, respectively.
Options
(a) 17.35 MeV (b) 18.06 MeV (c) 177.35 MeV […]
If the binding energy of the electron in a hydrogen atom is 13.6 eV, the energy required to remove the electron from the first excited state of Li⁺⁺ is
Options
(a) 122.4 eV […]
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